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Avoidance of speckle noise in laser vibrometry by the use of kurtosis ratio: Application to mechanical fault diagnostics

机译:通过使用峰度比避免激光振动测量中的斑点噪声:在机械故障诊断中的应用

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This paper presents a statistical technique to enhance vibration signals measured by laser Doppler vibrometry (LDV). The method has been optimised for LDV signals measured on bearings of universal electric motors and applied to quality control of washing machines. Inherent problems of LDV are addressed, particularly the speckle noise occurring when rough surfaces are measured. The presence of speckle noise is detected using a new scalar indicator kurtosis ratio (KR), specifically designed to quantify the amount of random impulses generated by this noise. The KR is a ratio of the standard kurtosis and a robust estimate of kurtosis, thus indicating the outliers in the data. Since it is inefficient to reject the signals affected by the speckle noise, an algorithm for selecting an undistorted portion of a signal is proposed. The algorithm operates in the time domain and is thus fast and simple. The algorithm includes band-pass filtering and segmentation of the signal, as well as thresholding of the KR computed for each filtered signal segment. Algorithm parameters are discussed in detail and instructions for optimisation are provided. Experimental results demonstrate that speckle noise is effectively avoided in severely distorted signals, thus improving the signal-to-noise ratio (SNR) significantly. Typical faults are finally detected using squared envelope analysis. It is also shown that the KR of the band-pass filtered signal is related to the spectral kurtosis (SK).
机译:本文提出了一种统计技术,可以增强通过激光多普勒振动法(LDV)测量的振动信号。该方法已针对在通用电动机轴承上测量的LDV信号进行了优化,并已应用于洗衣机的质量控制。解决了LDV的固有问题,尤其是在测量粗糙表面时出现的斑点噪声。使用新的标量指示器峰度比(KR)可以检测到斑点噪声的存在,该标度比专门设计用于量化由该噪声生成的随机脉冲的数量。 KR是标准峰度与峰度的可靠估计的比率,因此表明了数据中的异常值。由于拒绝受斑点噪声影响的信号效率低下,因此提出了一种用于选择信号的未失真部分的算法。该算法在时域中运行,因此既快速又简单。该算法包括带通滤波和信号分段,以及为每个滤波后的信号段计算的KR阈值。详细讨论算法参数,并提供优化说明。实验结果表明,在严重失真的信号中可以有效避免斑点噪声,从而显着提高了信噪比(SNR)。最后使用平方包络分析检测出典型故障。还表明,带通滤波后的信号的KR与频谱峰度(SK)有关。

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